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Tailoring Interface Energies via Phosphonic Acids to Grow and Stabilize Cubic FAPbI 3 Deposited by Thermal Evaporation.

Authors :
Castro-Méndez AF
Jahanbakhshi F
LaFollette DK
Lawrie BJ
Li R
Perini CAR
Rappe AM
Correa-Baena JP
Source :
Journal of the American Chemical Society [J Am Chem Soc] 2024 Jul 10; Vol. 146 (27), pp. 18459-18469. Date of Electronic Publication: 2024 Jun 27.
Publication Year :
2024

Abstract

Coevaporation of formamidinium lead iodide (FAPbI <subscript>3</subscript> ) is a promising route for the fabrication of highly efficient and scalable optoelectronic devices, such as perovskite solar cells. However, it poses experimental challenges in achieving stoichiometric FAPbI <subscript>3</subscript> films with a cubic structure (α-FAPbI <subscript>3</subscript> ). In this work, we show that undesired hexagonal phases of both PbI <subscript>2</subscript> and FAPbI <subscript>3</subscript> form during thermal evaporation, including the well-known 2H-FAPbI <subscript>3</subscript> , which are detrimental for optoelectronic performance. We demonstrate the growth of α-FAPbI <subscript>3</subscript> at room temperature via thermal evaporation by depositing phosphonic acids (PAc) on substrates and subsequently coevaporating PbI <subscript>2</subscript> and formamidinium iodide. We use density-functional theory to develop a theoretical model to understand the relative growth energetics of the α and 2H phases of FAPbI <subscript>3</subscript> for different molecular interactions. Experiments and theory show that the presence of PAc molecules stabilizes the formation of α-FAPbI <subscript>3</subscript> in thin films when excess molecules are available to migrate during growth. This migration of molecules facilitates the continued presence of adsorbed organic precursors at the free surface throughout the evaporation, which lowers the growth energy of the α-FAPbI <subscript>3</subscript> phase. Our theoretical analyses of PAc molecule-molecule interactions show that ligands can form hydrogen bonding to reduce the migration rate of the molecules through the deposited film, limiting the effects on the crystal structure stabilization. Our results also show that the phase stabilization with molecules that migrate is long-lasting and resistant to moist air. These findings enable reliable formation and processing of α-FAPbI <subscript>3</subscript> films via vapor deposition.

Details

Language :
English
ISSN :
1520-5126
Volume :
146
Issue :
27
Database :
MEDLINE
Journal :
Journal of the American Chemical Society
Publication Type :
Academic Journal
Accession number :
38934577
Full Text :
https://doi.org/10.1021/jacs.4c03911